[0001] This application claims priority to Chinese Patent Application No.
201210060323.0, filed with the Chinese Patent Office on March 08, 2012 and entitled "Method, apparatus
and system for transmitting gateway address", the content of which is hereby incorporated
by reference in its entirety.
Field
[0002] The present invention relates to the field of wireless communications and particularly
to a method, device and system for transmitting a gateway address.
Background
[0003] A Relay Node (RN) is introduced to a Long Term Evolution-Advanced (LTE-A) system
for increased network coverage, where the RN is connected with a Donor evolved Node
B (DeNB) by a wireless network. The RN can further be applied to a railway and other
mobile environments at a high speed to thereby lower the number of times that a User
Equipment (UE) is handed over, to improve the quality of a signal in a carriage and
other purposes.
[0004] Fig.1 illustrates the network architecture of the LTE-A system with RN deployed in
the prior art, where the RN accesses to an Evolved Packet Core (EPC) via a donor cell
of the DeNB, while there is no wired interface between the RN and the EPC, and each
RN can control one or more cells. In this architecture, an interface between the UE
and the RN is referred to Uu interface, and an interface between the RN and the DeNB
is referred to Un interface, where the DeNB is integrated with a part of a Serving
Gateway/Packet Data Network Gateway (SGW/PGW) function. The RN includes a stationary
RN and a mobile RN, where a relay node of which the location is unchanged is referred
to stationary RN and a relay node which supports mobility is referred a mobile RN.
[0005] For the stationary RN, the stationary RN is served by the DeNB with the necessary
SGW/PGW function. The DeNB transmits the Internet Protocol (IP) address of the SGW/PGW
function integrated therewith to a Mobility Management Entity (MME) of the stationary
RN, and after the RN is authenticated successfully, the MME selects the DeNB as a
SGW/PGW of the RN according to the received IP address and sets up an S5 interface
between the MME and the DeNB, and in the meantime the DeNB serves as an eNB of the
stationary RN and there is a further S1-C interface between the DeNB and the MME of
the stationary RN, as illustrated in Fig.2.
[0006] For the mobile RN, the MME selects a Mobility Anchor as an SGW/PGW of the mobile
RN and sets up an S5 interface between the MME and the mobility anchor. When accessing
the network, the Mobility Anchor sets up an S1-C interface between the MME of the
mobile RN and the Mobility Anchor in a manner of eNB, and when the mobile RN is handed
over to another DeNB, the mobile RN only has the serving eNB (i.e., the DeNB) changed,
the MME of the mobile RN sets up an S1-C signaling connection between the MME and
the destination DeNB, and the mobility anchor transfers an S1-U tunnel borne by an
Evolved Packet System (EPS) of the mobile RN from the source DeNB to the destination
DeNB, as illustrated in Fig.2.
[0007] In summary, the specification in the prior art only relates to how the DeNB assists
the MME in selecting an SGW/PGW for the stationary RN when the stationary RN accesses
the network, but doesn't relate to how the DeNB assists the MME in selecting a mobility
anchor as an SGW/PGW for the mobile RN when the mobile RN accesses the network.
Summary
[0008] Embodiments of the invention provide a method, device and system for transmitting
a gateway address so as to address the problem in the prior art that a DeNB can't
assist an MME in selecting a mobility anchor as an SGW/PGW for a mobile RN when the
mobile RN accesses a network.
[0009] An embodiment of the invention provides a method for transmitting a gateway address,
the method including:
determining, by an eNB, a gateway IP address of a mobility anchor which serves as
a gateway of a mobile RN upon determining an accessing device to be the mobile RN;
and
transmitting, by the eNB, the determined gateway IP address to a Mobility Management
Entity, MME, serving for the mobile RN.
[0010] An embodiment of the invention provides a method for transmitting indication information,
the method including:
determining, by an accessing device, the indication information indicating a type
of the accessing device; and
transmitting, by the accessing device, the indication information to an eNB.
[0011] An embodiment of the invention provides a method for transmitting an own gateway
address, the method including:
receiving, by a mobility anchor, an Interface Setup Request message from an eNB; and
transmitting, by the mobility anchor, its gateway IP address to the eNB.
[0012] An embodiment of the invention provides a method for authenticating an accessing
device, the method including:
determining, by an MME, that indication information received from an eNB indicates
that the accessing device is a mobile RN and indication information in subscription
data of the accessing device indicates that the accessing device is a mobile RN; and
selecting, by the MME, a mobility anchor corresponding to a gateway IP address received
from the eNB as a gateway of the mobile RN.
[0013] An embodiment of the invention provides an eNB for transmitting a gateway address,
the eNB including:
a first determination module configured, upon determining an accessing device to be
a mobile RN, to determine a gateway IP address of a mobility anchor which serves as
a gateway of the mobile RN; and
a first transmission module configured to transmit the determined gateway IP address
to an MME serving for the mobile RN.
[0014] An embodiment of the invention provides an accessing device for transmitting indication
information, the accessing device including:
a second determination module configured to determine the indication information indicating
a type of the accessing device; and
a second transmission module configured to transmit the indication information to
an eNB.
[0015] An embodiment of the invention provides a mobility anchor for transmitting its gateway
address, the mobility anchor including:
a third determination module configured to receive an Interface Setup Request message
from an eNB; and
a third transmission module configured to transmit a gateway IP address of the mobility
anchor to the eNB.
[0016] An embodiment of the invention provides an MME for authenticating an accessing device,
the MME including:
a fourth determination module configured to determine that indication information
received from an eNB indicates that the accessing device is a mobile RN and indication
information in subscription data of the accessing device indicates that the accessing
device is a mobile RN; and
a processing module configured to select a mobility anchor corresponding to a gateway
IP address received from the eNB as a gateway of the mobile RN.
[0017] An embodiment of the invention provides a system for transmitting a gateway address,
the system including:
an accessing device configured to determine indication information indicating a type
of the accessing device and to transmit the indication information to an eNB; and
the eNB configured, upon determining the accessing device to be a mobile RN, to determine
a gateway IP address of a mobility anchor which serves as a gateway of the mobile
RN and to transmit the determined gateway IP address to an MME serving for the mobile
RN.
[0018] In the embodiments of the invention, when the eNB determines the accessing device
to be a mobile Relay Node (RN), the eNB determines a gateway IP address of a mobility
anchor which serves as a gateway of the mobile RN and reports the determined gateway
IP address to the MME serving for the mobile RN so that the DeNB can assist the MME
in selecting an appropriate mobility anchor for the mobile RN as an SGW/PGA of the
mobile RN when the mobile RN accesses the network, to thereby ensure that the mobile
RN can operate normally.
Brief Description of the Drawings
[0019]
Fig.1 illustrates the network architecture of the LTE-A system to which the RN is
introduced in the prior art;
Fig.2 illustrates a schematic diagram of relationships between the network nodes in
the LTE-A system in which the stationary RN and the mobile RN are deployed in the
prior art;
Fig.3 illustrates a schematic structural diagram of a system for transmitting a gateway
address according to an embodiment of the invention;
Fig.4 illustrates a schematic structural diagram of an eNB for transmitting a gateway
address according to an embodiment of the invention;
Fig.5 illustrates a schematic structural diagram of a mobile RN for transmitting indication
information according to an embodiment of the invention;
Fig.6 illustrates a schematic structural diagram of a mobility anchor for transmitting
its gateway address according to an embodiment of the invention;
Fig.7 illustrates a schematic structural diagram of an MME for authenticating a mobile
RN according to an embodiment of the invention;
Fig.8 illustrates a schematic flow chart of a method for transmitting a gateway address
according to an embodiment of the invention;
Fig.9 illustrates a schematic flow chart of a method for transmitting indication information
according to an embodiment of the invention;
Fig.10 illustrates a schematic flow chart of a method for transmitting an own gateway
address according to an embodiment of the invention;
Fig.11 illustrates a schematic flow chart of a method for authenticating a mobile
RN according to an embodiment of the invention;
Fig.12 illustrates a schematic flow chart of a first process of attachment of a mobile
RN according to an embodiment of the invention;
Fig. 13 illustrates a schematic flow chart of a second process of attachment of a
mobile RN according to an embodiment of the invention; and
Fig.14 illustrates a schematic flow chart of a third process of attachment of a mobile
RN according to an embodiment of the invention.
Detailed Description of the Embodiments
[0020] In embodiments of the invention, when an eNB determines an accessing device to be
a mobile RN, the eNB determines a gateway IP address of a mobility anchor which serves
as a gateway of the mobile RN and reports the determined gateway IP address to an
MME serving for the mobile RN so that the DeNB can assist the MME in selecting an
appropriate SGW/PGW for the mobile RN when the mobile RN accesses a network, to thereby
ensure that the mobile RN can operate normally.
[0021] The embodiments of the invention will be described below in further details with
reference to the drawings.
[0022] As illustrated in Fig.3, a system for transmitting a gateway address according to
an embodiment of the invention includes:
[0023] An accessing device 10, configured to determine indication information, which indicates
a type of accessing device and to transmit the indication information to an eNB 20;
and
[0024] The eNB 20, configured to determine a gateway IP address of a mobility anchor which
serves as a gateway of a mobile RN upon determining the accessing device 10 to be
the mobile RN and to transmit the determined gateway IP address to an MME serving
for the mobile RN.
[0025] In a particular implementation, when accessing a network, the accessing device 10
transmits the indication information, which indicates the type of accessing device,
to the eNB 20, where the type of accessing device is a stationary RN or a mobile RN;
for example, if the accessing device 10 transmits "0" to the eNB 20 indicating that
the accessing device 10 is a stationary RN, then the eNB 20 knows that the accessing
device 10 is a stationary RN upon reception of "0"; or if the accessing device 10
transmits "1" to the eNB 20 indicating that the accessing device 10 is a mobile RN,
then the eNB 20 knows that the accessing device 10 is a mobile RN upon reception of
"1".
[0026] It shall be noted that the present embodiment will not be limited to the indication
pattern of "0" and "1", but any pattern capable of indicating a type of accessing
device can be applicable to the present embodiment.
[0027] Preferably the accessing device 10 transmits the indication information in a Radio
Resource Control (RRC) message; and
[0028] Preferably the eNB 20 receives the indication information in the RRC message.
[0029] In a particular implementation, the eNB 20 determines the accessing device 10 to
be a stationary RN or a mobile RN upon reception of the indication information transmitted
by the accessing device 10;
[0030] If the accessing device 10 is a mobile RN, then the eNB 20 determines the gateway
IP address of the mobility anchor which serves as a gateway of the mobile RN and transmits
the determined gateway IP address to the MME 30; and
[0031] Correspondingly after the MME 30 successfully authenticates the accessing device
10, the MME 30 selects an SGW/PGW for the mobile RN according to the gateway IP address
transmitted from the eNB 20, that is, determines that the mobility anchor corresponding
to the received gateway IP address serves as an SGW/PGW of the mobile RN.
[0032] If the accessing device 10 is a stationary RN, then the eNB 20 transmits an IP address
of an SGW/PGW function integrated therewith and the indication information of the
accessing device 10 to the MME 30 corresponding to the accessing device 10; and
[0033] Correspondingly the MME 30 selects the eNB 20 as an SGW/PGW of the mobile RN according
to the received IP address transmitted from the eNB 20 after the MME 30 authenticates
successfully the accessing device 10.
[0034] Where the gateway IP address in the present embodiment is an IP address of an SGW/PGW
function of the mobility anchor.
[0035] If there are more than one mobility anchors which can serve as a gateway of the mobile
RN, then the eNB 20 can select the mobility anchor 40 as a gateway of the mobile RN
as follows:
[0036] First scheme: the mobility anchor is selected according to a requirement of load
balancing, for example, a different mobility anchor is selected each time when the
mobility anchor is determined to serve as a gateway of the mobile RN, so that the
number of mobile RNs connected with each mobility anchor is as even as possible to
thereby avoid load imbalance;
[0037] Second scheme: the mobility anchor is selected dependent upon the capacity of each
mobility anchor, for example, a larger number of mobile RNs can be served by a mobility
anchor with a higher capacity, and a smaller number of mobile RNs can be served by
a mobility anchor with a lower capacity.
[0038] Third scheme: the mobility anchor is selected randomly.
[0039] It shall be noted that the present embodiment will not be limited to the three selection
schemes above, and any scheme capable of selecting one of the mobility anchors as
the mobility anchor which serve as a gateway of the mobile RN can be applicable to
the present embodiment.
[0040] In a particular implementation, the gateway IP address determined by the eNB 20 includes
but will not be limited to one of the following gateway IP addresses:
- 1. A gateway IP address of the mobility anchor 40 pre-stored into the eNB 20;
- 2. A gateway IP address of the mobility anchor 40 downloaded by the eNB from an Operation
and Maintenance (OAM) system;
- 3. An IP address of an S1 interface of the mobility anchor 40:
Particularly the eNB 20 can obtain the IP address of the S1 interface of the mobility
anchor 40 in the same way that an eNB obtains an IP address of an S1 interface of
an MME in the prior art, for example, the eNB 20 downloads the IP address of the S1
interface of the mobility anchor 40 from the OAM system;
- 4. An IP address of an X2 interface of the mobility anchor 40:
Particularly the eNB 20 can obtain the IP address of the S1 interface of the mobility
anchor 40 in the same way that an eNB obtains an IP address of an X2 interface of
an MME in the prior art, for example, the eNB 20 downloads the IP address of the X2
interface of the mobility anchor 40 from the OAM system; and
- 5. A gateway IP address of the mobility anchor 40, received by the eNB, returned from
the mobility anchor 40:
Particularly the mobility anchor 40 returns its gateway IP address to the eNB 20 after
an S1 interface is set up between the eNB 20 and the mobility anchor 40; or the mobility
anchor 40 returns its gateway IP address to the eNB 20 after an X2 interface is set
up between the eNB 20 and the mobility anchor 40.
[0041] If there are a plurality of gateway IP addresses available for selection by the eNB
20, for example, there are a plurality of gateway IP addresses of the mobility anchor
pre-configured in the eNB 20 by an operator, or a plurality of gateway IP addresses
of the mobility anchor downloaded by the eNB 20 from the OAM system, or a plurality
of gateway IP addresses of the mobility anchor returned from the mobility anchor,
or a plurality of IP addresses of the S1 interface of the mobility anchor, or a plurality
of IP addresses of the X2 interface of the mobility anchor, and in another example,
the gateway IP addresses available for selection include two or more of the gateway
IP addresses above, but the eNB 20 can only determine one gateway IP address for each
accessing mobile RN, then a different gateway IP address can be selected for each
mobile RN or a gateway IP address can be selected randomly for each mobile RN.
[0042] It shall be noted that the present embodiment will not be limited to the scheme above
to select a mobility anchor, but any scheme capable of selecting appropriate one of
mobility anchors as a gateway of the mobile RN can be applicable to the present embodiment.
[0043] If the S1 interface (or the X2 interface) is set up between the eNB 20 and the mobility
anchor 40, then before the S1 (or the X2 interface) is set up, the eNB 20 transmits
an Interface Setup Request message to the mobility anchor 40.
[0044] The system for transmitting a gateway address according to the embodiment of the
invention further includes:
[0045] The mobility anchor 40 is configured to receive the Interface Setup Request message
from the eNB 20 and to transmit its gateway IP address to the eNB 20.
[0046] Preferably if the S1 interface is set up between the eNB 20 and the mobility anchor
40, then the eNB 20 indicates that the eNB is a donor eNB in all of transmitted S1
Interface Setup Request messages or indicates that the eNB is a donor eNB in an S1
Interface Setup Request message transmitted to the mobility anchor 40; and
[0047] Correspondingly the mobility anchor 40 transmits its gateway IP address to the eNB
20 upon reception of the S1 Interface Setup Request message from the eNB 20;
[0048] Preferably the mobility anchor 40 transmits its gateway IP address to the eNB 20
upon determining that the S1 Interface Setup Request message includes identification
information indicating that the eNB 20 is a donor eNB; and
[0049] The mobility anchor 40 ends the process upon determining that the S1 Interface Setup
Request message includes no identification information indicating that the eNB 20
is a donor eNB;
[0050] Where the eNB 20 can obtian those nodes which are a mobility anchor from the OAM
system or otherwise.
[0051] Preferably if the X2 interface is set up between the eNB 20 and the mobility anchor
40, then the eNB 20 indicates that the eNB is a donor eNB in all of transmitted X2
Interface Setup Request messages or indicates that the eNB is a donor eNB in an X2
Interface Setup Request message transmitted to the mobility anchor 40; and
[0052] Correspondingly the mobility anchor 40 transmits its gateway IP address to the eNB
20 upon reception of the X2 Interface Setup Request message from the eNB 20;
[0053] Preferably the mobility anchor 40 transmits its gateway IP address to the eNB 20
upon determining that the X2 Interface Setup Request message includes identification
information indicating that the eNB 20 is a donor eNB; and
[0054] The mobility anchor 40 ends the process upon determining that the X2 Interface Setup
Request message includes no identification information indicating that the eNB 20
is a donor eNB;
[0055] Where the eNB 20 can obtain those nodes which are a mobility anchor from the OAM
system or otherwise.
[0056] In a particular implementation, after the eNB receives the indication information
transmitted from the accessing device 10, the eNB 20 transmits the indication information
to the MME 30 corresponding to the accessing device 10 to indicate to the MME 30 that
the accessing device 10 is a stationary RN or a mobile RN;
[0057] Preferably the eNB 20 transmits both the indication information of the accessing
device 10 and the determined network IP address to the MME 30.
[0058] The system for transmitting a gateway address according to the embodiment of the
invention further includes:
[0059] The MME 30 is configured to determine that the indication information received from
the eNB 20 indicates that the accessing device 10 is a mobile RN and indication information
in subscription data of the accessing device 10 indicates that the accessing device
10 is a mobile RN, and to select the mobility anchor corresponding to the gateway
IP address received from the eNB 20 as a gateway of the mobile RN.
[0060] In a particular implementation, the MME 30 authenticates the accessing device 10
as follows:
[0061] If the MME 30 determines that the received indication information transmitted from
the eNB 20 indicates that the accessing device 10 is a mobile RN and the indication
information in the subscription data of the accessing device 10 obtained by the MME
30 also indicates that the accessing device 10 is a mobile RN, then the authentication
succeeds, and the MME 30 determines that the accessing device 10 is a mobile RN; or
if the MME 30 determines that the received indication information transmitted from
the eNB 20 indicates that the accessing device 10 is a mobile RN and the indication
information in the subscription data of the accessing device 10 obtained by the MME
30 indicates that the accessing device 10 is a stationary RN, then the authentication
fails, and the MME 30 can reject the accessing device 10 for accessing the network.
[0062] Particularly the MME 30 can obtain the subscription data of the accessing device
from a Home Subscriber Server (HSS).
[0063] The MME 30 selects the mobility anchor corresponding to the gateway IP address received
from the eNB 20 as a gateway of the mobile RN according to the gateway IP address
after the mobile RN is authenticated successfully.
[0064] It shall be noted that the MME serving for the stationary RN and the MME serving
for the mobile RN in the present embodiment can be the same MME or can be different
MMEs.
[0065] The eNB in the system according to the embodiment of the system can be an eNB, a
DeNB, etc.
[0066] Based upon the same inventive idea, an embodiment of the invention further provides
an eNB for transmitting a gateway address, and since the eNB addresses the problem
under a similar principle to the eNB in the system illustrated in Fig.3, reference
can be made to the implementation of the eNB in the system for an implementation of
the present eNB, so a repeated description thereof will be omitted here.
[0067] As illustrated in Fig.4, the eNB 20 for transmitting a gateway address according
to the embodiment of the invention includes:
[0068] A first determination module 200 is configured, upon determining an accessing device
to be a mobile RN, to determine a gateway IP address of a mobility anchor which serves
as a gateway of the mobile RN; and
[0069] A first transmission module 210 is configured to transmit the determined gateway
IP address to an MME serving for the mobile RN.
[0070] The first transmission module 210 is further configured:
[0071] When there are more than one mobility anchors, to select one of the mobility anchors
as a gateway of the mobile RN according to a requirement of load balancing; or
[0072] To select one of the mobility anchors as a gateway of the mobile RN dependent upon
capacity of each mobility anchor; or
[0073] To select randomly one of the mobility anchors as a gateway of the mobile RN.
[0074] In a particular implementation, the gateway IP address determined by the first determination
module 200 is one of the following gateway IP addresses:
[0075] A gateway IP address of the mobility anchor pre-stored into the eNB 20;
[0076] A gateway IP address of the mobility anchor obtained by the eNB 20 from an OAM system;
[0077] An IP address of an S1 interface of the mobility anchor;
[0078] An IP address of an X2 interface of the mobility anchor; and
[0079] A gateway IP address of the mobility anchor, received by the eNB 20, returned from
the mobility anchor.
[0080] In a particular implementation, the first transmission module 210 is further configured:
[0081] To indicate that the eNB is a donor eNB in all of transmitted S1 Interface Setup
Request messages, or to indicate that the eNB is a donor eNB in an S 1 Interface Setup
Request message transmitted to the mobility anchor, before the S 1 interface is set
up between the eNB 20 and the mobility anchor; or
[0082] To indicate that the eNB is a donor eNB in all of transmitted X2 Interface Setup
Request messages, or to indicate that the eNB is a donor eNB in an X2 Interface Setup
Request message transmitted to the mobility anchor, before the X2 interface is set
up between the eNB 20 and the mobility anchor.
[0083] In a particular implementation, the first determination module 200 is further configured:
[0084] To determine the accessing device 10 to be a stationary RN or a mobile RN according
to indication information received from the accessing device 10.
[0085] In a particular implementation, the first transmission module 210 is further configured:
[0086] To transmit the indication information to the MME 30 corresponding to the mobile
RN to indicate to the MME 30 that the accessing device 10 is a mobile RN.
[0087] In a particular implementation, the first determination module 200 is further configured:
[0088] To receive the indication information in an RRC message.
[0089] Based upon the same inventive idea, an embodiment of the invention further provides
an accessing device for transmitting indication information, and since the accessing
device addresses the problem under a similar principle to the accessing device in
the system illustrated in Fig.3, reference can be made to the implementation of the
accessing device in the system for an implementation of the present accessing device,
so a repeated description thereof will be omitted here.
[0090] As illustrated in Fig.5, the accessing device 10 for transmitting indication information
according to the embodiment of the invention includes:
[0091] A second determination module 100 is configured to determine indication information
indicating a type of the accessing device; and
[0092] A second transmission module 110 is configured to transmit the indication information
to an eNB.
[0093] Where the type of the accessing device is a stationary RN or a mobile RN.
[0094] In a particular implementation, the second transmission module 110 is further configured
to transmit the indication information in an RRC message.
[0095] Based upon the same inventive idea, an embodiment of the invention further provides
a mobility anchor for transmitting its own gateway address, and since the mobility
anchor addresses the problem under a similar principle to the mobility anchor in the
system illustrated in Fig.3, reference can be made to the implementation of the mobility
anchor in the system for an implementation of the present mobility anchor, so a repeated
description thereof will be omitted here.
[0096] As illustrated in Fig.6, the mobility anchor 40 for transmitting a gateway address
according to the embodiment of the invention includes:
[0097] A third determination module 400 is configured to receive an Interface Setup Request
message from an eNB; and
[0098] A third transmission module 410 is configured to transmit a gateway IP address of
the mobility anchor to the eNB.
[0099] In a particular implementation, the third transmission module 410 is further configured:
[0100] To transmit the gateway IP address of the mobility anchor 40 to the eNB 20 after
determining that the Interface Setup Request message includes identification information
indicating that the eNB is a donor eNB.
[0101] Based upon the same inventive idea, an embodiment of the invention further provides
an MME for authenticating an accessing device, and since the MME addresses the problem
under a similar principle to the MME in the system illustrated in Fig.3, reference
can be made to the implementation of the MME in the system for an implementation of
the present MME, so a repeated description thereof will be omitted here.
[0102] As illustrated in Fig.7, the MME 30 for authenticating an accessing device according
to the embodiment of the invention includes:
[0103] A fourth determination module 300 is configured to determine that indication information
received from the eNB 20 indicates that the accessing device 10 is a mobile RN and
indication information in subscription data of the accessing device 10 indicates that
the accessing device 10 is a mobile RN; and
[0104] A processing module 310 is configured to select the mobility anchor 40 corresponding
to a gateway IP address received from the eNB 20 as a gateway of the mobile RN.
[0105] Based upon the same inventive idea, an embodiment of the invention further provides
a method for transmitting a gateway address, and since the method addresses the problem
under a similar principle to the eNB in the system illustrated in Fig.3, reference
can be made to the implementation of the eNB in the system for an implementation of
the method, so a repeated description thereof will be omitted here.
[0106] As illustrated in Fig.8, the method for transmitting a gateway address according
to the embodiment of the invention includes the following steps:
[0107] In the step 801, an eNB determines a gateway IP address of a mobility anchor which
serves as a gateway of a mobile RN upon determining an accessing device to be the
mobile RN; and
[0108] In the step 802, the eNB transmits the determined gateway IP address to an MME serving
for the mobile RN.
[0109] In a particular implementation, when the eNB determines the accessing device to be
a stationary RN, the eNB transmits an IP address of an SGW/PGW function integrated
therewith, and indication information indicating that a type of accessing device is
a stationary RN, to the MME serving for the stationary RN.
[0110] In a particular implementation, if there are more than one mobility anchors, then
before the eNB determines the gateway IP address of the mobility anchor, the method
further includes:
[0111] The eNB selects one of the mobility anchors as a gateway of the mobile RN according
to a requirement of load balancing; or selects one of the mobility anchors as a gateway
of the mobile RN dependent upon capacity of each mobility anchor; or selects randomly
one of the mobility anchors as a gateway of the mobile RN.
[0112] In a particular implementation, the gateway IP address determined by the eNB is one
of the following gateway IP addresses:
[0113] A gateway IP address of the mobility anchor pre-stored into the eNB;
[0114] A gateway IP address of the mobility anchor obtained by the eNB from an Operation
and Maintenance (OAM) system;
[0115] An IP address of an S1 interface of the mobility anchor;
[0116] An IP address of an X2 interface of the mobility anchor; and
[0117] A gateway IP address of the mobility anchor, received by the eNB, returned from the
mobility anchor.
[0118] Where the eNB can obtain the IP address of the S1 interface of the mobility anchor
in the same way that an eNB obtains an IP address of an S1 interface of an MME in
the prior art, for example, the eNB downloads it from the OAM system; and
[0119] The eNB can obtain the IP address of the X2 interface of the mobility anchor in the
same way that an eNB obtains an IP address of an X2 interface of an MME in the prior
art, for example, the eNB downloads it from the OAM system.
[0120] Preferably if the S 1 interface is set up between the eNB and the mobility anchor,
then the eNB indicates that the eNB is a donor eNB in all of transmitted S 1 Interface
Setup Request messages or indicates that the eNB is a donor eNB in an S1 Setup Interface
Request message transmitted to the mobility anchor; or
[0121] If the X2 interface is set up between the eNB and the mobility anchor, then before
the X2 interface is set up, the method further includes: the eNB indicates that the
eNB is a donor eNB in all of transmitted X2 Interface Setup Request messages, or indicates
that the eNB is a donor eNB in an X2 Interface Setup Request message transmitted to
the mobility anchor.
[0122] In a particular implementation, the eNB determines the accessing device to be a stationary
RN or a mobile RN in the following steps:
[0123] The eNB determines the accessing device to be a stationary RN or a mobile RN according
to indication information received from the accessing device, where the indication
information is information for indicating the type of accessing device, and the type
of the accessing device is a stationary RN or a mobile RN.
[0124] For example, if the accessing device transmits "0" to the eNB indicating that the
accessing device is a stationary RN, then the eNB knows that the accessing device
is a stationary RN upon reception of "0"; or if the accessing device transmits "1"
to the eNB indicating that the accessing device is a mobile RN, then the eNB knows
that the accessing device is a mobile RN upon reception of "1".
[0125] It shall be noted that the present embodiment will not be limited to the indication
pattern of "0" and "1", but any pattern capable of indicating a type of accessing
device can be applicable to the present embodiment.
[0126] In a particular implementation, after the eNB receives the indication information
from the accessing device, the eNB transmits the indication information to the MME
serving for the mobile RN to indicate to the MME that the accessing device is a mobile
RN.
[0127] Preferably the eNB transmits both the indication information and the determined gateway
IP address to the MME upon determining the accessing device to be a mobile RN.
[0128] Preferably the eNB receives the indication information transmitted by the accessing
device in a Radio Resource Control (RRC) message.
[0129] Based upon the same inventive idea, an embodiment of the invention further provides
a method for transmitting indication information, and since the method addresses the
problem under a similar principle to the accessing device in the system illustrated
in Fig.3, reference can be made to the implementation of the accessing device in the
system for an implementation of the method, so a repeated description thereof will
be omitted here.
[0130] As illustrated in Fig.9, the method for transmitting indication information according
to the embodiment of the invention includes the following steps:
[0131] In the step 901, an accessing device determines indication information indicating
a type of the accessing device; and
[0132] In the step 902, the accessing device transmits the indication information to an
eNB.
[0133] Where the type of accessing device is a stationary RN or a mobile RN.
[0134] In the step 902, the accessing device transmits the indication information to the
eNB to notify the eNB that the accessing device is a stationary RN or a mobile RN;
and when the accessing device is a stationary RN, the eNB transmits an IP address
of an SGW/PGW function integrated therewith and indication information of the stationary
RN to an MME serving for the stationary RN; or when the accessing device is a mobile
RN, the eNB determines a gateway IP address of a mobility anchor which serves as a
gateway of the mobile RN and transmits the gateway IP address and indication information
of the mobile RN to the MME serving for the stationary RN.
[0135] Preferably the accessing device transmits the indication information to the eNB in
an RRC message.
[0136] Based upon the same inventive idea, an embodiment of the invention further provides
a method for transmitting an own gateway address, and since the method addresses the
problem under a similar principle to the mobility anchor in the system illustrated
in Fig.3, reference can be made to the implementation of the mobility anchor in the
system for an implementation of the method, so a repeated description thereof will
be omitted here.
[0137] As illustrated in Fig.10, the method for transmitting an own gateway address according
to the embodiment of the invention includes the following steps:
[0138] In the step 1001, a mobility anchor receives an Interface Setup Request message from
an eNB; and
[0139] In the step 1002, the mobility anchor transmits its gateway IP address to the eNB.
[0140] Where the Interface Setup Request message includes an S1 Interface Setup Request
message and/or an X2 Setup Interface Request message.
[0141] In a particular implementation, the mobility anchor transmits its gateway IP address
to all of eNBs transmitting the Interface Setup Request message; or
[0142] Before transmitting its gateway IP address to the eNB, the mobility anchor determines
from the received Interface Setup Request message whether the Interface Setup Request
message includes identification information indicating that the eNB is a donor eNB;
and
[0143] If so, that is, the transmitted Interface Setup Request message includes identification
information indicating that a type of eNB is a donor eNB, then the mobility anchor
transmits its gateway IP address to the eNB; and
[0144] Otherwise, that is, the transmitted Interface Setup Request message does not include
the identification information, then the mobility anchor does not transmit its gateway
IP address to the eNB.
[0145] Based upon the same inventive idea, an embodiment of the invention further provides
a method for authenticating an accessing device, and since the method addresses the
problem under a similar principle to the MME in the system illustrated in Fig.3, reference
can be made to the implementation of the MME in the system for an implementation of
the method, so a repeated description thereof will be omitted here.
[0146] As illustrated in Fig.11, the method for authenticating an accessing device according
to the embodiment of the invention includes the following steps:
[0147] In the step 1101, an MME determines that indication information received from an
eNB indicates that the accessing device is a mobile RN and indication information
in subscription data of the accessing device indicates that the accessing device is
a mobile RN; and
[0148] In the step 1102, the MME selects a mobility anchor corresponding to a gateway IP
address received from the eNB as a gateway of the mobile RN.
[0149] In a particular implementation, the MME can obtain the subscription data of the accessing
device from an HSS.
[0150] In the embodiment of the invention, the gateway IP address and the indication information
transmitted from the eNB to the MME is carried in an S1 Application Protocol (S1AP)
message.
[0151] Interaction between the respective devices in the system for transmitting a gateway
IP address according to the embodiment of the invention will be described below in
details taking a process of attachment of a mobile RN as an example. In the process
of attachment of the mobile RN, the gateway IP address and the indication information
transmitted from the eNB to the MME is carried in an Initial UE message which is an
S1AP message.
[0152] As illustrated in Fig.12, a first process of attachment of a mobile RN according
to an embodiment of the invention includes the following steps:
[0153] In the step 1201, the mobile RN sets up an RRC connection with a DeNB (i.e., RRC
Connection Setup) and notifies in an RRC message the DeNB that it is a mobile RN;
[0154] Particularly after the mobile RN completes setting up of the connection with the
DeNB (i.e., RRC Connection Setup Complete), the mobile RN can carry indication information
of the identity of the mobile RN in the RRC message transmitted to the DeNB.
[0155] In the step 1202, the DeNB determines the accessing device to be a mobile RN from
the received indication information, determines a gateway IP address of a mobility
anchor which serves as a gateway of the mobile RN and transmits the indication information
and the determined gateway IP address of the mobility anchor to an MME serving for
the mobile RN in an Initial UE message.
[0156] Particularly the gateway IP address of the mobility anchor can be pre-configured
in the DeNB by an operator, or the DeNB can download the gateway IP address of the
mobility anchor from an OAM system, or the DeNB can determine an IP address of an
S1 interface of the mobility anchor to be the gateway IP address of the mobility anchor,
or the DeNB can determine an IP address of an X2 interface of the mobility anchor
to be the gateway IP address of the mobility anchor;
[0157] Where the DeNB can obtain the IP address of the S1 interface (or the X2 interface)
of the mobility anchor in the same way that an eNB obtains an IP address of an S1
interface (or an X2 interface) of an MME in the prior art, for example, the DeNB downloads
the IP address of the S1 interface (or the X2 interface) of the mobility anchor from
the OAM system;
[0158] In a particular implementation, if there are more than one mobility anchors, then
the DeNB can select one of the mobility anchors as a gateway of the mobile RN according
to a requirement of load balancing; or select one of the mobility anchors as a gateway
of the mobile RN dependent upon capacity of each mobility anchor; or select randomly
one of the mobility anchors as a gateway of the mobile RN.
[0159] In the step 1203, after the mobile RN is authenticated successfully by a core network,
the MME selects an SGW/PGW for the mobile RN according to the received gateway IP
address of the mobility anchor, and transmits a Creat Session Request to the mobility
anchor;
[0160] In the step 1204, upon reception of the Create Session Request transmitted from the
MME, the mobility anchor sets up an EPS bearer context for the mobile RN and returns
a Create Session Response message to the MME;
[0161] In the step 1205, upon reception of the Create Session Response message returned
from the mobility anchor, the MME transmits an Initial Context Setup Request message
to the DeNB and sets up the context of the mobile RN in the DeNB; and
[0162] In the step 1206, the DeNB sets up a Data Radio Bearer (DRB) with the mobile RN in
a RRC Connection Reconfigure procedure.
[0163] As illustrated in Fig.13, a second process of attachment of a mobile RN according
to an embodiment of the invention includes the following steps:
[0164] In the step 1301, an S1 interface is set up between the DeNB and a mobility anchor
(S1 Setup), and the mobility anchor returns an IP address of its SGW/PGW function
to the DeNB;
[0165] In a particular implementation, the mobility anchor can transmit the IP address of
its SGW/PGW function to all of eNBs between which and the mobility anchor the S1 interface
is set up; or
[0166] Upon determining an eNB, between which and the mobility anchor the S1 interface is
set up, to be a DeNB, the mobility anchor can transmit the IP address of its SGW/PGW
function to the DeNB, where the DeNB can indicate the mobility anchor that its type
is a DeNB in an S1 Interface Setup Request message transmitted to the mobility anchor.
[0167] In a particular implementation, the DeNB can indicate that its type is a DeNB in
all of transmitted S 1 Interface Setup Request messages; or
[0168] Only when the S 1 interface is set up between the DeNB and a node with its type being
a mobility anchor, the DeNB can indicate that its type is a DeNB in an S1 Interface
Setup Request message transmitted to the mobility anchor, and particularly the DeNB
can determine which nodes to be a mobility anchor from an OAM system or otherwise.
[0169] In the step 1302, the mobile RN sets up an RRC connection with the DeNB (i.e., RRC
Connection Setup) and notifies in an RRC message the DeNB that it is a mobile RN;
[0170] Particularly after the mobile RN completes setting up of the connection with the
DeNB (i.e., RRC Connection Setup Complete), the mobile RN can carry indication information
of the identity of the mobile RN in the RRC message transmitted to the DeNB.
[0171] In the step 1303, the DeNB determines the accessing device to be a mobile RN from
the received indication information, determines a gateway IP address of a mobility
anchor which serves as a gateway of the mobile RN, and transmits the indication information
and the determined gateway IP address of the mobility anchor to an MME serving for
the mobile RN in an Initial UE message.
[0172] Particularly the gateway IP address of the mobility anchor can be pre-configured
in the DeNB by an operator, or the DeNB can download the gateway IP address of the
mobility anchor from an OAM system, or the DeNB can determine an IP address of an
S1 interface of the mobility anchor to be the gateway IP address of the mobility anchor,
or the DeNB can determine a gateway IP address of the mobility anchor returned from
the mobility anchor to be the gateway IP address of the mobility anchor;
[0173] The DeNB can obtain the IP address of the S1 interface of the mobility anchor in
the same way that an eNB obtains an IP address of an S1 interface of an MME in the
prior art, for example, the DeNB downloads the IP address of the S1 interface of the
mobility anchor from the OAM system;
[0174] In a particular implementation, if there are more than one mobility anchors, then
the DeNB can select appropriate one of the mobility anchors as a gateway of the mobile
RN according to a requirement of load balancing; or select appropriate one of the
mobility anchors as a gateway of the mobile RN dependent upon capacity of each mobility
anchor; or select randomly appropriate one of the mobility anchors as a gateway of
the mobile RN.
[0175] In the step 1304, after the mobile RN is authenticated successfully by a core network,
the MME selects an SGW/PGW for the mobile RN according to the received gateway IP
address of the mobility anchor, and transmits a Create Session Request to the mobility
anchor;
[0176] In the step 1305, upon reception of the Create Session Request transmitted from the
MME, the mobility anchor sets up an EPS bearer context for the mobile RN and returns
a Create Session Response message to the MME;
[0177] In the step 1306, upon reception of the Create Session Response message returned
from the mobility anchor, the MME transmits an Initial Context Setup Request message
to the DeNB and sets up the context of the mobile RN in the DeNB; and
[0178] In the step 1307, the DeNB sets up a DRB with the mobile RN in a RRC Connection
[0179] Reconfigure procedure.
[0180] As illustrated in Fig.14, a third process of attachment of a mobile RN according
to an embodiment of the invention includes the following steps:
[0181] In the step 1401, an X2 interface is set up between a DeNB and a mobility anchor
(X2 Setup), and the mobility anchor returns an IP address of its SGW/PGW function
to the DeNB;
[0182] In a particular implementation, the mobility anchor can transmit the IP address of
its SGW/PGW function to all of eNBs between which and the mobility anchor the X2 interface
is set up; or
[0183] Upon determining an eNB, between which and the mobility anchor the X2 interface is
set up, to be a DeNB, the mobility anchor can transmit the IP address of its SGW/PGW
function to the DeNB, where the DeNB can indicate the mobility anchor that its type
is a DeNB in an X2 Interface Setup Request message transmitted to the mobility anchor.
[0184] In a particular implementation, the DeNB can indicate that its type is a DeNB in
all of transmitted X2 Interface Setup Request messages; or
[0185] Only when the X2 interface is set up between the DeNB and a node with its type being
a mobility anchor, the DeNB can indicate that its type is a DeNB in an X2 Interface
Setup Request message transmitted to the mobility anchor, and particularly the DeNB
can determine which nodes to be a mobility anchor from an OAM system or otherwise.
[0186] In the step 1402, the mobile RN sets up an RRC connection with the DeNB (i.e., RRC
Connection Setup) and notifies in an RRC message the DeNB that it is a mobile RN;
[0187] Particularly after the mobile RN completes setting up of the connection with the
DeNB (i.e., RRC Connection Setup Complete), the mobile RN can carry indication information
of the identity of the mobile RN in the RRC message transmitted to the DeNB.
[0188] In the step 1403, the DeNB determines the accessing device to be a mobile RN from
the received indication information, determines a gateway IP address of a mobility
anchor which serves as a gateway of the mobile RN, and transmits the indication information
and the determined gateway IP address of the mobility anchor to an MME serving for
the mobile RN in an Initial UE message.
[0189] Particularly the gateway IP address of the mobility anchor can be pre-configured
in the DeNB by an operator, or the DeNB can download the gateway IP address of the
mobility anchor from an OAM system, or the DeNB can determine an IP address of an
X2 interface of the mobility anchor to be the gateway IP address of the mobility anchor,
or the DeNB can determine a gateway IP address of the mobility anchor returned from
the mobility anchor to be the gateway IP address of the mobility anchor;
[0190] The DeNB can obtain the IP address of the X2 interface of the mobility anchor in
the same way that an eNB obtains an IP address of an X2 interface of an MME in the
prior art, for example, the DeNB downloads the IP address of the X2 interface of the
mobility anchor from the OAM system;
[0191] In a particular implementation, if there are more than one mobility anchors, then
the DeNB can select appropriate one of the mobility anchors as a gateway of the mobile
RN according to a requirement of load balancing; or select appropriate one of the
mobility anchors as a gateway of the mobile RN dependent upon capacity of each mobility
anchor; or select randomly appropriate one of the mobility anchors as a gateway of
the mobile RN.
[0192] In the step 1404, after the mobile RN is authenticated successfully by a core network,
the MME selects an SGW/PGW for the mobile RN according to the received gateway IP
address of the mobility anchor, and transmits a Create Session Request to the mobility
anchor;
[0193] In the step 1405, upon reception of the Create Session Request transmitted from the
MME, the mobility anchor sets up an EPS bearer context for the mobile RN and returns
a Create Session Response message to the MME;
[0194] In the step 1406, upon reception of the Create Session Response message returned
from the mobility anchor, the MME transmits an Initial Context Setup Request message
to the DeNB and sets up the context of the mobile RN in the DeNB; and
[0195] In the step 1407, the DeNB sets up a DRB with the mobile RN in a RRC Connection Reconfigure
procedure.
[0196] Although the preferred embodiments of the invention have been described, those skilled
in the art benefiting from the underlying inventive concept can make additional modifications
and variations to these embodiments. Therefore the appended claims are intended to
be construed as encompassing the preferred embodiments and all the modifications and
variations coming into the scope of the invention.
[0197] In the embodiments of the invention, when the eNB determines the accessing device
to be a mobile RN, the eNB determines a gateway IP address of a mobility anchor which
serves as a gateway of the mobile RN and reports the determined gateway IP address
to the MME serving for the mobile RN so that the DeNB can assist the MME in selecting
an appropriate mobility anchor for the mobile RN as an SGW/PGA of the mobile RN when
the mobile RN accesses the network, to thereby ensure that the mobile RN can operate
normally.
[0198] With the embodiments of the invention, the existing DeNB device supporting a stationary
RN can be upgraded to thereby support both a stationary RN and a mobile RN so as to
alleviate the modification to the existing DeNB device so that the same DeNB device
can be applicable to a larger number of scenarios to thereby facilitate the extension
of a product market.
[0199] With the embodiments of the invention, the MME supporting a stationary RN can be
reused to serve a mobile RN, and the MME can be enabled to select a gateway without
being upgraded to thereby lower a cost of upgrading and developing the device so that
the same MME can be applicable to a larger number of scenarios to thereby facilitate
the extension of a product market.
[0200] Those skilled in the art shall appreciate that the embodiments of the invention can
be embodied as a method, a system or a computer program product. Therefore the invention
can be embodied in the form of an all-hardware embodiment, an all-software embodiment
or an embodiment of software and hardware in combination. Furthermore the invention
can be embodied in the form of a computer program product embodied in one or more
computer useable storage mediums (including but not limited to a disk memory, a CD-ROM,
an optical memory, etc.) in which computer useable program codes are contained.
[0201] The invention has been described in a flow chart and/or a block diagram of the method,
the device (system) and the computer program product according to the embodiments
of the invention. It shall be appreciated that respective flows and/or blocks in the
flow chart and/or the block diagram and combinations of the flows and/or the blocks
in the flow chart and/or the block diagram can be embodied in computer program instructions.
These computer program instructions can be loaded onto a general-purpose computer,
a specific-purpose computer, an embedded processor or a processor of another programmable
data processing device to produce a machine so that the instructions executed on the
computer or the processor of the other programmable data processing device create
means for performing the functions specified in the flow(s) of the flow chart and/or
the block(s) of the block diagram.
[0202] These computer program instructions can also be stored into a computer readable memory
capable of directing the computer or the other programmable data processing device
to operate in a specific manner so that the instructions stored in the computer readable
memory create an article of manufacture including instruction means which perform
the functions specified in the flow(s) of the flow chart and/or the block(s) of the
block diagram.
[0203] These computer program instructions can also be loaded onto the computer or the other
programmable data processing device so that a series of operational steps are performed
on the computer or the other programmable data processing device to create a computer
implemented process so that the instructions executed on the computer or the other
programmable device provide steps for performing the functions specified in the flow(s)
of the flow chart and/or the block(s) of the block diagram.
[0204] Although the preferred embodiments of the invention have been described, those skilled
in the art benefiting from the underlying inventive concept can make additional modifications
and variations to these embodiments. Therefore the appended claims are intended to
be construed as encompassing the preferred embodiments and all the modifications and
variations coming into the scope of the invention.
[0205] Evidently those skilled in the art can make various modifications and variations
to the invention without departing from the spirit and scope of the invention. Thus
the invention is also intended to encompass these modifications and variations thereto
so long as the modifications and variations come into the scope of the claims appended
to the invention and their equivalents.
1. A method for transmitting a gateway address, wherein the method comprises:
determining, by an eNB, a gateway IP address of a mobility anchor which serves as
a gateway of a mobile Relay Node, RN, upon determining an accessing device to be the
mobile RN; and
transmitting, by the eNB, the determined gateway IP address to a Mobility Management
Entity, MME, serving for the mobile RN.
2. The method according to claim 1, wherein if there are more than one mobility anchors,
then before the eNB determines the gateway IP address of the mobility anchor, the
method further comprises:
selecting, by the eNB, one of the mobility anchors as the gateway of the mobile RN
according to a requirement of load balancing; or
selecting one of the mobility anchors as the gateway of the mobile RN dependent upon
capacity of each mobility anchor; or
selecting randomly one of the mobility anchors as the gateway of the mobile RN.
3. The method according to claim 1, wherein the gateway IP address determined by the
eNB is one of:
a gateway IP address of the mobility anchor pre-stored into the eNB;
a gateway IP address of the mobility anchor obtained by the eNB from an Operation
and Maintenance, OAM, system;
an IP address of an S1 interface of the mobility anchor;
an IP address of an X2 interface of the mobility anchor; and
a gateway IP address of the mobility anchor, received by the eNB, returned from the
mobility anchor.
4. The method according to claim 3, wherein if the S1 interface is set up between the
eNB and the mobility anchor, then before the S1 interface is set up, the method further
comprises: the eNB indicating that the eNB is a donor eNB in all of transmitted S1
Interface Setup Request messages, or the eNB indicating that the eNB is a donor eNB
in an S 1 Interface Setup Request message transmitted to the mobility anchor; or
if the X2 interface is set up between the eNB and the mobility anchor, then before
the X2 interface is set up, the method further comprises: the eNB indicating that
the eNB is a donor eNB in all of transmitted X2 Interface Setup Request messages,
or the eNB indicating that the eNB is a donor eNB in an X2 Interface Setup Request
message transmitted to the mobility anchor.
5. The method according to any one of claims 1 to 4, wherein the eNB determines the accessing
device to be a stationary RN or a mobile RN in a way that:
the eNB determines the accessing device to be a stationary RN or a mobile RN according
to indication information received from the accessing device.
6. The method according to claim 5, wherein after the eNB receives the indication information
from the accessing device, the method further comprises:
transmitting, by the eNB, the indication information to the MME serving for the mobile
RN to indicate to the MME that the accessing device is a mobile RN.
7. The method according to claim 5, wherein the eNB receives the indication information
from a Radio Resource Control, RRC, message.
8. A method for transmitting indication information, wherein the method comprises:
determining, by an accessing device, the indication information indicating the type
of the accessing device; and
transmitting, by the accessing device, the indication information to an eNB.
9. The method according to claim 8, wherein the type of the accessing device is a stationary
RN or a mobile RN.
10. The method according to claim 8 or 9, wherein transmitting, by the accessing device,
the indication information to the eNB comprises:
transmitting, by the accessing device, the indication information to the eNB in an
RRC message.
11. A method for transmitting an own gateway address, wherein the method comprises:
receiving, by a mobility anchor, an Interface Setup Request message from an eNB; and
transmitting, by the mobility anchor, its gateway IP address to the eNB.
12. The method according to claim 11, wherein before the mobility anchor transmits its
gateway IP address to the eNB, the method further comprises:
determining, by the mobility anchor, that the Interface Setup Request message comprises
identification information indicating that the eNB is a donor eNB.
13. A method for authenticating an accessing device, wherein the method comprises:
determining, by an MME, that indication information received from an eNB indicates
that the accessing device is a mobile RN and indication information in subscription
data of the accessing device indicates that the accessing device is a mobile RN; and
selecting, by the MME, a mobility anchor corresponding to a gateway IP address received
from the eNB as a gateway of the mobile RN.
14. An eNB for transmitting a gateway address, wherein the eNB comprises:
a first determination module configured, upon determining an accessing device to be
a mobile RN, to determine a gateway IP address of a mobility anchor which serves as
a gateway of the mobile RN; and
a first transmission module configured to transmit the determined gateway IP address
to an MME serving for the mobile RN.
15. The eNB according to claim 14, wherein the first transmission module is further configured:
when there are more than one mobility anchors, to select one of the mobility anchors
as the gateway of the mobile RN according to a requirement of load balancing; or to
select one of the mobility anchors as the gateway of the mobile RN dependent upon
capacity of each mobility anchor; or to select randomly one of the mobility anchors
as the gateway of the mobile RN.
16. The eNB according to claim 14, wherein the gateway IP address determined by the first
determination module is one of:
a gateway IP address of the mobility anchor pre-stored into the eNB;
a gateway IP address of the mobility anchor obtained by the eNB from an Operation
and Maintenance, OAM, system;
an IP address of an S1 interface of the mobility anchor;
an IP address of an X2 interface of the mobility anchor; and
a gateway IP address of the mobility anchor, received by the eNB, returned from the
mobility anchor.
17. The eNB according to claim 16, wherein the first transmission module is further configured:
to indicate that the eNB is a donor eNB in all of transmitted S 1 Interface Setup
Request messages, or to indicate that the eNB is a donor eNB in an S 1 Interface Setup
Request message transmitted to the mobility anchor, before the S1 interface is set
up between the eNB and the mobility anchor; or
to indicate that the eNB is a donor eNB in all of transmitted X2 Interface Setup Request
messages, or to indicate that the eNB is a donor eNB in an X2 Interface Setup Request
message transmitted to the mobility anchor, before the X2 interface is set up between
the eNB and the mobility anchor.
18. The eNB according to any one of claims 14 to 17, wherein the first determination module
is further configured:
to determine the accessing device to be a stationary RN or a mobile RN according to
indication information received from the accessing device.
19. The eNB according to claim 18, wherein the first transmission module is further configured:
to transmit the indication information to the MME serving for the mobile RN to indicate
to the MME that the accessing device is a mobile RN.
20. The eNB according to claim 18, wherein the first determination module is further configured:
to receive the indication information in an RRC message.
21. An accessing device for transmitting indication information, wherein the accessing
device comprises:
a second determination module configured to determine the indication information indicating
a type of the accessing device; and
a second transmission module configured to transmit the indication information to
an eNB.
22. The accessing device according to claim 21, wherein the type of the accessing device
is a stationary RN or a mobile RN.
23. The accessing device according to claim 21 or 22, wherein the second transmission
module is further configured:
to transmit the indication information to the eNB in an RRC message.
24. A mobility anchor for transmitting its own gateway address, wherein the mobility anchor
comprises:
a third determination module configured to receive an Interface Setup Request message
from an eNB; and
a third transmission module configured to transmit a gateway IP address of the mobility
anchor to the eNB.
25. The mobility anchor according to claim 24, wherein the third transmission module is
further configured:
to transmit the gateway IP address of the mobility anchor to the eNB after determining
that the Interface Setup Request message comprises identification information indicating
that the eNB is a donor eNB.
26. An MME for authenticating an accessing device, wherein the MME comprises:
a fourth determination module configured to determine that indication information
received from an eNB indicates that the accessing device is a mobile RN and indication
information in subscription data of the accessing device indicates that the accessing
device is a mobile RN; and
a processing module configured to select a mobility anchor corresponding to a gateway
IP address received from the eNB as a gateway of the mobile RN.
27. A system for transmitting a gateway address, wherein the system comprises:
an accessing device configured to determine indication information indicating a type
of the accessing device and to transmit the indication information to an eNB; and
the eNB configured, upon determining the accessing device to be a mobile RN, to determine
a gateway IP address of a mobility anchor which serves as a gateway of the mobile
RN and to transmit the determined gateway IP address to an MME serving for the mobile
RN.
28. The system according to claim 27, wherein the eNB is further configured to transmit
the indication information to the MME serving for the mobile RN to indicate to the
MME that the accessing device is a mobile RN; and
the system further comprises:
the MME configured to determine that the indication information received from the
eNB indicates that the accessing device is a mobile RN and indication information
in subscription data of the accessing device indicates that the accessing device is
a mobile RN, and to select a mobility anchor corresponding to the gateway IP address
received from the eNB as a gateway of the mobile RN.
29. The system according to claim 27 or 28, wherein the eNB is further configured:
to transmit an Interface Setup Request message to the mobility anchor before an S1
interface and/or an X2 interface is set up between the eNB and the mobility anchor;
and
the system further comprises:
the mobility anchor configured to receive the Interface Setup Request message from
the eNB and to transmit its gateway IP address to the eNB.